Experimentally decomposing phytoplankton community change into ecological and evolutionary contributions

被引:11
作者
Hattich, Giannina S., I [1 ,2 ]
Listmann, Luisa [3 ,4 ]
Govaert, Lynn [5 ,6 ,7 ,8 ]
Pansch, Christian [2 ]
Reusch, Thorsten B. H. [3 ]
Matthiessen, Birte [1 ]
机构
[1] GEOMAR Helmholtz Ctr Ocean Res Kiel, Expt Ecol Foodwebs, Kiel, Germany
[2] Abo Akad Univ, Environm & Marine Biol, Turku, Finland
[3] GEOMAR Helmholtz Ctr Ocean Res Kiel, Marine Evolutionary Ecol, Kiel, Germany
[4] Univ Hamburg, Inst Marine Okosyst & Fischereiwissensch, Hamburg, Germany
[5] Univ Zurich, Dept Evolutionary Biol & Environm Studies, Zurich, Switzerland
[6] Swiss Fed Inst Aquat Sci & Technol, Dept Aquat Ecol, Dubendorf, Switzerland
[7] Univ Zurich, URPP Global Change & Biodivers, Zurich, Switzerland
[8] Leibniz Inst Gewasserokol & Binnenfischerei IGB, Berlin, Germany
关键词
community change; eco-evolutionary shifts; environmental change; interspecific diversity; intraspecific diversity; ocean acidification; partitioning metrics; relative contribution; OCEAN ACIDIFICATION; PARTITIONING METRICS; MARINE-PHYTOPLANKTON; RAPID EVOLUTION; DIVERSITY; RESPONSES; SELECTION; CO2; BIODIVERSITY; DYNAMICS;
D O I
10.1111/1365-2435.13923
中图分类号
Q14 [生态学(生物生态学)];
学科分类号
071012 ; 0713 ;
摘要
1. Shifts in microbial communities and their functioning in response to environmental change result from contemporary interspecific and intraspecific diversity changes. Interspecific changes are driven by ecological shifts in species composition, while intraspecific changes are here assumed to be dominated by evolutionary shifts in genotype frequency. Quantifying the relative contributions of interspecific and intraspecific diversity shifts to community change thus addresses the essential, yet understudied question as to how important ecological and evolutionary contributions are to total community changes. This debate is to date practically constrained by (a) a lack of studies integrating across organizational levels and (b) a mismatch between data requirements of existing partitioning metrics and the feasibility to collect such data, especially in microscopic organisms like phytoplankton. 2. We experimentally assessed the relative ecological and evolutionary contributions to total phytoplankton community changes using a new design and validated its functionality by comparisons to established partitioning metrics. We used a community of coexisting Emiliania huxleyi and Chaetoceros affinis with initially nine genotypes each. First, we exposed the community to elevated CO2 concentration for 80 days (similar to 50 generations) to induce interspecific and intraspecific diversity changes and a total abundance change. Second, we independently manipulated the induced interspecific and intraspecific diversity changes in an assay to quantify the corresponding ecological and evolutionary contributions to the total change. Third, we applied existing partitioning metrics to our experimental data and compared the outcomes. 3. Total phytoplankton abundance declined to one-fifth in the high CO2 exposed community compared to ambient conditions. Consistently across all applied partitioning metrics, the abundance decline could predominantly be explained by ecological shifts and to a low extent by evolutionary changes. 4. We discuss potential consequences of the observed community changes on ecosystem functioning. Furthermore, we explain that the low evolutionary contributions likely resulted of intraspecific diversity changes that occurred irrespectively of CO2. We discuss how the assay could be upscaled to more realistic settings, including more species and drivers. Overall, the presented calculations of eco-evolutionary contributions to phytoplankton community changes constitute another important step towards understanding future phytoplankton shifts, and eco-evolutionary dynamics in general.
引用
收藏
页码:120 / 132
页数:13
相关论文
共 77 条
  • [1] Plankton responses to ocean acidification: The role of nutrient limitation
    Alvarez-Fernandez, S.
    Bach, L. T.
    Taucher, J.
    Riebesell, U.
    Sommer, U.
    Aberle, N.
    Brussaard, C. P. D.
    Boersma, M.
    [J]. PROGRESS IN OCEANOGRAPHY, 2018, 165 : 11 - 18
  • [2] [Anonymous], 2009, EFFECT SIZES BASED C
  • [3] Simulated ocean acidification reveals winners and losers in coastal phytoplankton
    Bach, Lennart T.
    Alvarez-Fernandez, Santiago
    Hornick, Thomas
    Stuhr, Annegret
    Riebesell, Ulf
    [J]. PLOS ONE, 2017, 12 (11):
  • [4] Global patterns in predator-prey size relationships reveal size dependency of trophic transfer efficiency
    Barnes, Carolyn
    Maxwell, David
    Reuman, Daniel C.
    Jennings, Simon
    [J]. ECOLOGY, 2010, 91 (01) : 222 - 232
  • [5] Towards a more precise - and accurate - view of eco-evolution
    Bassar, Ronald D.
    Coulson, Tim
    Travis, Joseph
    Reznick, David N.
    [J]. ECOLOGY LETTERS, 2021, 24 (04) : 623 - 625
  • [6] The functional genomics of an eco-evolutionary feedback loop: linking gene expression, trait evolution, and community dynamics
    Becks, Lutz
    Ellner, Stephen P.
    Jones, Laura E.
    Hairston, Nelson G., Jr.
    [J]. ECOLOGY LETTERS, 2012, 15 (05) : 492 - 501
  • [7] Why intraspecific trait variation matters in community ecology
    Bolnick, Daniel I.
    Amarasekare, Priyanga
    Araujo, Marcio S.
    Buerger, Reinhard
    Levine, Jonathan M.
    Novak, Mark
    Rudolf, Volker H. W.
    Schreiber, Sebastian J.
    Urban, Mark C.
    Vasseur, David A.
    [J]. TRENDS IN ECOLOGY & EVOLUTION, 2011, 26 (04) : 183 - 192
  • [8] From mice to elephants: overturning the 'one size fits all' paradigm in marine plankton food chains
    Boyce, Daniel G.
    Frank, Kenneth T.
    Leggett, William C.
    [J]. ECOLOGY LETTERS, 2015, 18 (06) : 504 - 515
  • [9] Global phytoplankton decline over the past century
    Boyce, Daniel G.
    Lewis, Marlon R.
    Worm, Boris
    [J]. NATURE, 2010, 466 (7306) : 591 - 596
  • [10] Anthropogenic carbon and ocean pH
    Caldeira, K
    Wickett, ME
    [J]. NATURE, 2003, 425 (6956) : 365 - 365